Publication | Open Access
Non-Gaussian superradiant transition via three-body ultrastrong coupling
13
Citations
70
References
2023
Year
Quantum DynamicEngineeringMany-body Quantum PhysicNon-gaussian Superradiant TransitionGaussian ApproximationsQuantum ComputingQuantum Mechanical PropertyQuantum Optical HamiltoniansQuantum TheoryQuantum EntanglementQuantum OpticsQuantum ScienceThree-body CouplingsPhysicsQuantum Field TheoryNatural SciencesApplied PhysicsQuantum SystemMany-body Problem
We introduce a class of quantum optical Hamiltonians characterized by three-body couplings and propose a circuit-QED scheme based on state-of-the-art technology that implements the considered model. Unlike two-body light-matter interactions, this three-body coupling Hamiltonian is exclusively composed of terms which do not conserve the particle number. We explore the three-body ultrastrong-coupling regime, showing the emergence of a superradiant phase transition which is of first order, is characterized by the breaking of ${\mathbb{Z}}_{2}\ifmmode\times\else\texttimes\fi{}{\mathbb{Z}}_{2}$ symmetry, and has a strongly non-Gaussian nature. Indeed, in contrast to what is observed in any two-body-coupling model, in proximity of the transition the ground state exhibits a divergent coskewness, i.e., quantum correlations that cannot be captured within semiclassical and Gaussian approximations. Furthermore, we demonstrate the robustness of our findings by including dissipative processes in the model, showing that the steady state of the system inherits from the ground states the most prominent features of the transition.
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